Jiangsu Key Laboratory for Design and Manufacture of Micro-Nano Biomedical Instruments, School of Mechanical Engineering, Southeast University, Nanjing, 211100, China.
School of Mechanical and Electronic Engineering, Nanjing Forestry University, Nanjing, 210037, China.
Small Methods. 2022 Aug;6(8):e2200318. doi: 10.1002/smtd.202200318. Epub 2022 Jun 3.
During the past decades, scientists have developed different kinds of nanorobots based on various driving principles to realize controlled manipulation of them for potential applications like medical diagnosis and directed cargo delivery. In order to design a nanorobot with advantages of simple operation and precise control that can enrich the family of intelligent nanorobots, an encoding manipulation method is proposed to control the movement of a DNA-nanoparticle assembled nanorobot by combing electrophoresis and electroosmosis effect in independently charged array nanopores. The nanorobot is composed of one nanoparticle and one or two ssDNAs. ssDNAs act as the legs of the nanorobot. The selective ion transport through charged nanopores can induce cooperation and competition between the electroosmosis and electrophoresis, which is the main power to activate the nanorobot. Thus by simply switching the applied electric field and surface charge density of each nanopore which is defined as the encoded nanopore according to a predetermined strategy, the well-controlled encoding manipulation including capturing, releasing, jumping, and crawling of the nanorobot is realized in this work. The study is expected to realize its value in many interesting applications like drug delivery, nanosurgery, and so on in the near future.
在过去的几十年中,科学家们基于各种驱动原理开发了不同种类的纳米机器人,以实现对它们的控制操作,从而将其应用于医疗诊断和靶向药物输送等领域。为了设计一种操作简单、控制精确的纳米机器人,丰富智能纳米机器人家族,本文提出了一种编码操作方法,通过在独立带电阵列纳米孔中结合电泳和电渗效应来控制由 DNA 纳米颗粒组装而成的纳米机器人的运动。该纳米机器人由一个纳米颗粒和一个或两个单链 DNA(ssDNA)组成。ssDNA 充当纳米机器人的“腿”。通过带电纳米孔选择性离子传输可以诱导电渗流和电泳之间的协同和竞争,这是激活纳米机器人的主要动力。因此,通过简单地根据预定策略切换每个纳米孔的外加电场和表面电荷密度(定义为编码纳米孔),可以实现纳米机器人的受控编码操作,包括捕获、释放、跳跃和爬行。这项研究有望在药物输送、纳米手术等许多有趣的应用中实现其价值。